HELP Cars collision problem

1. The problem statement, all variables and given/known data
You are a police officer analyzing the scene of a collision. On a rainy afternoon, a Porsche Carrera, of mass 1380kg, was travelling due north along Hwy38 near Verona, Ontario when a 2304kg SUV pulled out of a driveway (travelling due west) in front of the Porsche. As soon as the vehicles collided, they stuck together. Both drivers immediately applied their brakes, causing the wheel to lock. You measure the skid marks and see that the two vehicles skidded together at an angle of 40 degree west of the Porsche’s original due north direction for 11.3m. the coefficient of kinetic friction between wet concrete and rubber is 0.5.

The SUV driver claims that the Porsche was speeding. How fast was the Porsche actually travelling? Knowing that the speed limit along Hwy38 is 80km/h, should you charge the Porsche driver for speeding?

3. The attempt at a solution
I found out the acceleration for both after both cars collide by using
a=(mg*sin40-mu(k)*mg*cos 40)/m
where, m=3684 g=9.8
I know that according to the Law of conservation of Momentum P=P'
Then, I found out the equation for the problem:
mass1*velocity1+mass2*velocity2=(mass1+mass2)*velocity
(mass1+mass2)*velocity because both cars stick together
Now my question is how can I find all of the velocity for the equation, since I don't have time I can't use v=v+at
Thank you for helping

You can use conservation of energy.
For the simple model here the friction gives a constant force (coeff * weight) and energy = force*distance.
Assuming all the original energy was ke of the porsche and it all went into friction of the skid you can work out the ke and so the speed.

You can use conservation of energy.
For the simple model here the friction gives a constant force (coeff * weight) and energy = force*distance.
Assuming all the original energy was ke of the porsche and it all went into friction of the skid you can work out the ke and so the speed.

I just re-read the question more carefully.
It doesn't say the SUV was stationary.

You also have to use conservation of momentum to work out how much of the original momentum was porsche going north and SUV going west.

When they collide and move off at 40deg you can resolve this momentum into North and West components. ie, V*3684*cos(40) and V*3684*sin(40).
Momentum is conserved in each component so you know all the North component of momentum came from the Porsche going North.
You can work out V from knowing the total KE after the collision, it's just the energy that went into the skid we already found.
Then you know the total North momentum must be the same as the initial Porsche moment, and you knwo the Porsche mass so you have it's speed

I just re-read the question more carefully.
It doesn't say the SUV was stationary.

You also have to use conservation of momentum to work out how much of the original momentum was porsche going north and SUV going west.
From the 40deg angle they move off in and their relative masses you can work out the ratio of their initial speeds.

Sorry, I still don't quite get how you get the initial speeds for both cars. Do you use cos40=adj/11.3 to find out the distance that Porche will travel and sin40=oppo/11.3 to find out the distance that SUV will travel. and use the acceleration i got previously for 11.3m to find out the velocity for both cars.

I think I edited my answer while you were writing yours.
The important thing is that momentum North-South and East-West are conserved separately.
You can resolve the resulting momentum vector of the collision into NS and EW which corresponds to the original momentum of the vehicles movign NS and EW

When they collide and move off at 40deg you can resolve this momentum into North and West components. ie, V*3684*cos(40) and V*3684*sin(40).
Momentum is conserved in each component so you know all the North component of momentum came from the Porsche going North.
You can work out V from knowing the total KE after the collision, it's just the energy that went into the skid we already found.
Then you know the total North momentum must be the same as the initial Porsche moment, and you knwo the Porsche mass so you have it's speed